[0001] The present invention relates generally to intrabody tracking systems, and specifically
to wireless methods and devices for tracking the position and orientation of an object
in the body.
[0002] Various methods and systems are known in the art for tracking the position of a medical
probe or implant inside the body of a subject. For example,
US-5391199 and
US-5443489 disclose systems wherein the coordinates of an intrabody probe are determined using
one or more field sensors, such as a Hall effect device, coils, or other antennae
carried on the probe. Such systems are used for generating three-dimensional location
information regarding a medical probe or catheter. Preferably, a sensor coil is placed
in the catheter and generates signals in response to externally-applied magnetic fields.
The magnetic fields are generated by three radiator coils, fixed to an external reference
frame in known, mutually-spaced locations. The amplitudes of the signals generated
in response to each of the radiator coil fields are detected and used to compute the
location of the sensor coil. Each radiator coil is preferably driven by driver circuitry
to generate a field at a known frequency, distinct from that of other radiator coils,
so that the signals generated by the sensor coil may be separated by frequency into
components corresponding to the different radiator coils.
[0003] WO-96/05768,
US-6690963 and
US-A-2002/0065455 disclose a system that generates six-dimensional position and orientation information
regarding the tip of a catheter. This system uses a plurality of sensor coils adjacent
to a locatable site in the catheter, for example near its distal end, and a plurality
of radiator coils fixed in an external reference frame. These coils generate signals
in response to magnetic fields generated by the radiator coils, which signals allow
for the computation of six location and orientation coordinates.
[0004] US-6239724 discloses a telemetry system for providing spatial positioning information from within
a patient's body. The system includes an implantable telemetry unit having (a) a first
transducer, for converting a power signal received from outside the body into electrical
power for powering the telemetry unit; (b) a second transducer, for receiving a positioning
field signal that is received from outside the body; and (c) a third transducer, for
transmitting a locating signal to a site outside the body, in response to the positioning
field signal.
[0005] US-A-2003/0120150 discloses apparatus for tracking an object which includes a plurality of field generators,
which generate electromagnetic fields at different, respective frequencies in a vicinity
of the object, and a radio frequency (RF) driver, which radiates a RF driving field
toward the object. A wireless transponder is fixed to the object. The transponder
includes at least one sensor coil, in which a signal current flows responsive to the
electromagnetic fields, and a power coil, which receives the RF driving field and
conveys electrical energy from the driving field to power the transponder. The power
coil also transmits an output signal responsive to the signal current to a signal
receiver, which processes the signal to determine coordinates of the object.
[0007] There is therefore provided, in accordance with the present invention, a surgical
tracking system as defined in claim 1.
[0008] The invention will now be described by way of example with reference to the accompanying
drawings, in which:
Fig. 1 is a schematic, pictorial illustration of an example magnetic tracking system
used in surgery;
Figs. 2A and 2B are schematic, partly sectional illustrations, showing insertion of
implantable position sensors into the bone of a patient;
Figs. 3A and 3B are schematic, pictorial illustrations showing details of wireless
position sensors;
Fig. 4 is a schematic, pictorial illustration showing details of a two-part position
sensor;
Fig. 5 is a schematic, pictorial illustration showing a surgical tool and a position
sensor used to track coordinates of the tool;
Fig. 6A is a schematic, pictorial illustration showing an operating table and a location
pad that is inserted into the table;
Fig. 6B is a schematic, pictorial illustration showing the location pad of Fig. 6A
after insertion into the operating table, and showing the working volume of the location
pad;
Fig. 7 is a schematic, pictorial illustration showing adjustment of the magnetic tracking
system of Fig. 1 for use in a knee operation;
Fig. 8 is a schematic, pictorial illustration of a magnetic tracking system for use
in surgery;
Fig. 9 is a schematic, pictorial illustration of a magnetic tracking system for use
in surgery;
Figs. 10A and 10B are schematic, pictorial illustrations of a magnetic tracking system
for use in surgery; and
Fig. 11 is a schematic, pictorial illustration of a magnetic tracking system for use
in surgery, in accordance with an embodiment of the present invention.
[0009] Referring to the drawings, Fig. 1 is a schematic, pictorial illustration of an example
magnetic tracking system 20 for use in surgery. In figure 1, a surgeon 22 is preparing
to perform a procedure on a leg 24 of a patient 26. The surgeon uses a tool 28 to
implant or place an implant, generally designated 30, (in this example a bone screw
30) in the bone of leg 24. Both the tool and the implant, i.e. the screw, contain
miniature, wireless position sensors, which are described in detail below. Each sensor
generates and transmits signals that are indicative of its location and orientation
coordinates, in response to an external magnetic field produced by a set of field
generator coils 32 (also referred to as radiator coils). Typically, multiple screws
30 with position sensors are implanted by surgeon 22 at key locations in the patient's
bone. Additionally or alternatively, similar position sensors may be fixed to other
implants 30, such as a prosthetic joint or intramedullary insert or other implants
30 such as a nail, rod, pin, staple, bone or tissue anchor, or other orthopaedic device,
in order to permit the position of the implant 30 to be monitored, as well. For example,
the use of such position sensors in a hip implant is shown in
US-A-2002/0120150.
[0010] Field generator coils 32 are driven by driver circuits 34 to generate electromagnetic
fields at different, respective sets of frequencies {ω
1}, {ω
2} and {ω
3}. Typically, the sets comprise frequencies in the approximate range of 100 Hz to
30 kHz, although higher and lower frequencies may also be used. The sets of frequencies
at which the coils radiate are set by a computer 36, which serves as the system controller
for system 20. The respective sets of frequencies may all include the same frequencies,
or they may include different frequencies. In any case, computer 36 controls circuits
34 according to a known multiplexing pattern, which provides that at any point in
time, no more than one field generator coil is radiating at any given frequency. Typically,
each driver circuit is controlled to scan cyclically over time through the frequencies
in its respective set. Alternatively, each driver circuit may drive the respective
coil 32 to radiate at multiple frequencies simultaneously.
[0011] For the purposes of system 20, coils 32 may be arranged in any convenient position
and orientation, so long as they are fixed in respect to some reference frame, and
so long as they are non-overlapping, that is, there are no two field generator coils
with the exact, identical location and orientation. Typically, for surgical applications
such as that shown in the figures, coils 32 comprise wound annular coils about 15
to 20 cm in outer diameter (OD) and about 1 to 2 cm thick, in a triangular arrangement,
wherein the centres of the coils are about 80 to 100 cm apart. The coil axes may be
parallel, as shown in this figure, or they may alternatively be inclined, as shown,
for example, in Figs. 6A and 6B. Bar-shaped transmitters or even triangular or square-shaped
coils could also be useful for such applications.
[0012] In orthopaedic and other surgical applications, it is desirable that coils 32 be
positioned away from the surgical field, so as not to interfere with the surgeon's
freedom of movement. On the other hand, the coils should be positioned so that the
working volume of the tracking system includes the entire area in which the surgeon
is operating. At the same time, the locations and orientations of coils 32 should
be known relative to a given reference frame in order to permit the coordinates of
tool 28 and screw 30 to be determined in that reference frame.
[0013] In order to meet these potentially-conflicting requirements, coils 32 are mounted
on a reference structure 40. In the example of Fig. 1, structure 40 comprises multiple
arms 42, which are fixed to an articulated base 44. Alternative reference structures
and configurations are shown in the figures that follow. Arms 42 hold coils 32 in
known relative positions. Base 44, however, is capable of tilting, turning and changing
the elevations of arms 42, so as to enable surgeon 22 to position coils 32 in convenient
locations. The movement of base 44 may be controlled by computer 36, so that the computer
is also aware of the actual locations of coils 32.
[0014] Alternatively or additionally, an image registration procedure may be used to calibrate
the positions of coils 32 relative to patient 26. An exemplary registration procedure,
based on X-ray imaging, is described in
US-6314310. Further alternatively or additionally, a reference sensor, fixed to patient 26 or
to the operating table in a known location, may be used for calibration. The use of
reference sensors for this purpose is described, for example, in
US-5391199.
[0015] The position sensors in screw 30 and tool 28 typically comprise sensor coils, in
which electrical currents are induced to flow in response to the magnetic fields produced
by field generator coils 32. An exemplary arrangement of the sensor coils is shown
in Fig. 3A below. The sensor coils may be wound on either air cores or cores of magnetic
material. Typically, each position sensor comprises three sensor coils, having mutually
orthogonal axes, one of which is conveniently aligned with the longitudinal axis of
tool 28 or of screw 30. The three coils may be concentrically wound on a single core,
or alternatively, the coils may be non-concentrically wound on separate cores, and
spaced along the longitudinal axis of the tool or screw. The use of non-concentric
coils is disclosed, for example, in
WO-96/05768 and
US-A-2002/0065455. Alternatively, the position sensors may each comprise only a single sensor coil
or two sensor coils. Further alternatively, screw 30 and tool 28 may comprise magnetic
position sensors based on sensing elements of other types known in the art, such as
Hall effect sensors.
[0016] At any instant in time, the currents induced in the sensor coils comprise components
at the specific frequencies in sets {ω
1}, {ω
2} and {ω
3} generated by field generator coils 32. The respective amplitudes of these currents
(or alternatively, of time-varying voltages that may be measured across the sensor
coils) are dependent on the location and orientation of the position sensor relative
to the locations and orientations of the field generator coils. In response to the
induced currents or voltages, signal processing and transmitter circuits in each position
sensor generate and transmit signals that are indicative of the location and orientation
of the sensor. These signals are received by a receiving antenna (shown, for example,
in Fig. 6A), which is coupled to computer 36. The computer processes the received
signals, together with a representation of the signals used to drive field generator
coils 32, in order to calculate location and orientation coordinates of screw 30 and
tool 28. The coordinates are used by the computer in driving a display 46, which shows
the relative locations and orientations of the tool, screw and other elements (such
as prosthetic implants) to which position sensors have been fixed.
[0017] Although in Fig. 1, system 20 is shown as comprising three field generator coils
32, different numbers, types and configurations of field generators and sensors may
used. A fixed frame of reference may be established, for example, using only two non-overlapping
field generator coils to generate distinguishable magnetic fields. Two non-parallel
sensor coils may be used to measure the magnetic field flux due to the field generator
coils, in order to determine six location and orientation coordinates (X, Y, Z directions
and pitch, yaw and roll orientations) of the sensor. Using three field generator coils
and three sensor coils, however, tends to improve the accuracy and reliability of
the position measurement.
[0018] Alternatively, if only a single sensor coil is used, computer 36 can still determine
five position and orientation coordinates (X, Y, Z directions and pitch and yaw orientations).
Specific features and functions of a single coil system (also referred to as a single
axis system) are disclosed in
US-6484118.
[0019] When a metal or other magnetically-responsive article is brought into the vicinity
of an object being tracked, such as screw 30 or tool 28, the magnetic fields in this
vicinity are distorted. In the surgical environment shown in Fig. 1, for example,
there can be a substantial amount of conductive and permeable material, including
basic and ancillary equipment (operating tables, carts, movable lamps, etc.), as well
as invasive surgery apparatus (scalpels, scissors, etc., including tool 28 itself).
The magnetic fields produced by field generator coils 32 may generate eddy currents
in such articles, and the eddy currents then cause a parasitic magnetic field to be
radiated. Such parasitic fields and other types of distortion can lead to errors in
determining the position of the object being tracked.
[0020] In order to alleviate this problem, the elements of tracking system 20 and other
articles used in the vicinity of the tracking system are typically made of non-metallic
materials when possible, or of metallic materials with low permeability and conductivity.
For example, reference structure 40 may be constructed using plastic or non-magnetic
composite materials, as may other articles in this vicinity, such as the operating
table. In addition, computer 36 may be programmed to detect and compensate for the
effects of metal objects in the vicinity of the surgical site. Exemplary methods for
such detection and compensation are disclosed in
US-6147480 and
US-6373240, as well as in
US-A-2004/0239314 and
US-A-2005/0024043.
[0021] Fig. 2A is a schematic, sectional illustration showing implantation of screw 30 into
a bone 50, such as the femur of patient 26. To insert the screw, surgeon 22 makes
an incision through overlying soft tissue 52, and then rotates the screw into bone
50 using tool 28, for example. Alternatively, the screw may be inserted percutaneously,
without prior incision. Note that in the embodiment of Fig. 2A, screw 30 has no wired
connection to elements outside the body. Typically, screw 30 is between about 5 and
15 mm long, and is about 2-4 mm in diameter. To avoid interfering with reception and
transmission of signals by the sensor that it contains, screw 30 typically comprises
a non-magnetic material, which may comprise metals, alloys, ceramics, plastics or
a combination of such materials. The configuration and operation of the circuits in
screw 30 are described below with reference to Figs. 3A and 3B.
[0022] Fig. 2B is a schematic, sectional illustration showing another position sensor device
54. Device 54 comprises an implantable screw 56, which is coupled by wires 58 to an
external unit 60. Screw 56 is inserted into bone 50 in substantially the same manner
as is screw 30 (leaving wires 58 to pass out of the patient's body through soft tissue
52). In this case, however, because some elements of device 54 are contained in external
unit 60, screw 56 may generally be made smaller than screw 30. For example, screw
56 may be between about 5 and 10 mm long, and between about 2 and 4 mm in diameter.
The reduced screw size is helpful in reducing trauma and possible damage to bone 50.
Further details of device 54 are shown in Fig. 4.
[0023] Fig. 3A is a schematic, pictorial illustration of a wireless position sensor 70 that
is contained in screw 30. Sensor 70 comprises three sets of coils: sensor coils 72,
power coils 74, and a communication coil 76. Alternatively, the functions of the power
and communication coils may be combined, as described in
US-A-2003/0120150 (referred to above). Further alternatively, although communication coil 76 is shown
in Fig. 3A to be wound in a plane that is perpendicular to the longitudinal axis of
screw 30, the communication coil or antenna may alternatively be arranged along the
length of sensor 70, roughly parallel to the longitudinal axis of the screw. Coils
72, 74 and 76 are coupled to electronic processing circuitry 78, which is mounted
on a suitable substrate 80, such as a flexible printed circuit board (PCB). Details
of the construction and operation of circuitry 78 are disclosed
US-A-2003/0120150.
[0024] Although for simplicity, Fig. 3A shows only a single sensor coil 72 and a single
power coil 74, in practice sensor 70 typically comprises multiple coils of each type,
such as three sensor coils and three power coils. The sensor coils are wound together,
in mutually-orthogonal directions, on a sensor core 82, while the power coils are
wound together, in mutually-orthogonal directions, on a power core 84. Typically,
each of the three power coils comprises about 30 to 40 turns of wire having a diameter
of at least about 40 µm, while power core 84 is a ferrite cube of about 1.5 to 2 mm
on a side. Each of the three sensor coils typically comprises between about 700 and
3000 turns of 11 µm diameter wire, while sensor core 82 is a ferrite cube of about
1.8 to 2.4 mm on a side. (It will be understood that these dimensions are given by
way of example, and the dimensions may in practice vary over a considerable range.)
Alternatively, the sensor and power coils may be overlapped on the same core. It is
generally desirable to separate the coils one from another by means of a dielectric
layer (or by interleaving the power and sensor coils when a common core is used for
both) in order to reduce parasitic capacitance between the coils.
[0025] In operation, power coils 74 serve as a power source for sensor 70. The power coils
receive energy by inductive coupling from an external driving antenna (shown, for
example, in Fig. 6A). Typically, the driving antenna radiates an intense electromagnetic
field at a relatively high radio frequency (RF), such as in the range of 13.5 MHz.
The driving field causes currents to flow in coils 74, which are rectified in order
to power circuitry 78. Meanwhile, field generator coils 32 (Fig. 1) induce time-varying
signal voltages to develop across sensor coils 72, as described above. Circuitry 78
senses the signal voltages, and generates output signals in response thereto. The
output signals may be either analog or digital in form. Circuitry 78 drives communication
coil 76 to transmit the output signals to a receiving antenna (also shown in Fig.
6A) outside the patient's body. Typically, the output signals are transmitted at still
higher radio frequencies, such as frequencies in the rage of 43 MHz or 915 MHz, using
a frequency-modulation scheme, for example. Additionally or alternatively, coil 76
may be used to receive control signals, such as a clock signal, from a transmitting
antenna (not shown) outside the patient's body. Although certain frequency ranges
are cited above by way of example, those skilled in the art will appreciate that other
frequency ranges may be used for the same purposes.
[0026] In another example, not shown in the figures, sensor coils 72 are non-concentric.
In this example, each of the sensor coils typically has an inner diameter of about
0.5 to 1.3 mm and comprises about 2000 to 3000 turns of 11 µm diameter wire, giving
an overall coil diameter of about 1 to 1.9 mm. (As above, these dimensions are given
only by way of example, and the actual dimensions may vary.) The wire size of the
sensor coils can range from 10 to 31 µm, and the number of turns between 300 and more
than 3000, depending on the maximum allowable size and the wire diameter. The effective
capture area of the sensor coils is typically made as large as feasible, consistent
with the overall size requirements. The sensor coils are typically cylindrical, but
other shapes can also be used. For example, barrel-shaped or square coils may be useful,
depending on the geometry of screw 30.
[0027] Fig. 3B is a schematic, pictorial illustration of another wireless position sensor
90. Sensor 90 differs from sensor 70, in that sensor 90 comprises a battery 92 as
its power source, instead of power coils 74. Battery 92 may be of any suitable type,
either single-use or rechargeable. In other respects, the operation of sensor 90 is
substantially similar to that of sensor 70, as described above. Use of battery 92
has the advantages of supplying higher operating power to electronic processing circuitry
78, while avoiding the need to irradiate patient 26 with an intense electromagnetic
field in order to provide inductive RF power to the sensor. On the other hand, incorporating
battery 92 in sensor 90 typically increases the length of the sensor, by comparison
to sensor 70, and therefore may require the use of a longer screw 30 to contain the
sensor. In addition, the operating lifetime of sensor 70 is effectively unlimited,
while that of sensor 90 is limited by the lifetime of battery 92.
[0028] Fig. 4 is a schematic, pictorial illustration showing details of device 54. The external
features of device 54 and its implantation in bone 50 were described above with reference
to Fig. 2B. Device 54 comprises an internal sensing unit 94, which is contained in
screw 56. Typically, sensing unit 94 contains only sensor coils 72, and possibly or
optionally elements of circuitry 78. This arrangement allows the size of screw 56
to be minimized. External unit 60 typically contains a battery 96 and circuit elements
98, which comprise some or all of circuitry 78 (depending on how much of circuitry
78 is located within sensing unit 94), as well as communication coil 76. The battery
may thus be replaced when necessary, without removing screw 56 from the bone. On the
other hand, whereas sensors 70 and 90 are contained completely within screw 30, and
thus leave no elements protruding outside the patient's body, device 54 can operate
only when external unit 60 is connected outside the body to wires 58 that are operatively
connected to sensing unit 94 and communicate with sensing unit 94.
[0029] Fig. 5 is a schematic, pictorial illustration showing details of tool 28. Tool 28
comprises a handle 100 and a shaft 102. A tool sensor 104 fits snugly into a suitable
receptacle inside handle 100. Sensor 104 comprises sensing and communication circuits
106, which are powered by a battery 108. Typically, circuits 106 comprise three sensing
coils, a communication coil and processing circuitry, as in sensor 90 (Fig. 3B). The
sensing coils are similar to coils 72, and sense the location and orientation of sensor
104 relative to the magnetic fields generated by field generator coils 32 (Fig. 1).
The communication coil conveys position signals to computer 36. The operation of circuits
106 is thus similar to that of the circuits in sensors 70 and 90, although elements
of circuits 106 may be made larger and consume greater power than the corresponding
elements in sensors 70 and 90.
[0030] Tool sensor 104 may be permanently housed inside tool 28, or the sensor may alternatively
be removable (to replace battery 108, for example). Because the geometry of tool 28
is known, the location and orientation of handle 100, as indicated by sensor 104,
indicates precisely the location and orientation of the distal tip of shaft 102. Alternatively,
the tool sensor 104 may be miniaturized and may thus be contained inside shaft 102.
Optionally, the tool sensor 104 may be calibrated before use in order to enhance the
precision with which the shaft position is measured.
[0031] Figs. 6A and 6B are schematic, pictorial illustrations showing insertion of a location
pad 110 into an opening in an operating table 112. Pad 110 may be used as the reference
structure in system 20 (Fig. 1), in place of structure 40. Pad 110 comprises an integral
unit, which holds three field generator coils 32 in fixed positions. The unit is typically
made from non-magnetic material, such as carbon fibre, fibreglass, plastic or ceramic.
The field generator coils in this case are angled diagonally inward. In Fig. 6A pad
110 is shown prior to insertion into the table, while in Fig. 6B the pad has been
slid into place.
[0032] Location pad 110 is also seen in Fig. 6A to comprise an optional power coil 114 and
a communication coil 116. Power coil 114 is coupled by wires (not shown) to driver
circuits 34, and generates an electromagnetic field to provide power inductively to
power coils 74 in sensor 70 (Fig. 3A), as described above. (When a battery-powered
sensor is used, the power coil is not required.) Communication coil 116 receives signals
transmitted by communication coil 76 in sensors that are implanted in the patient's
body, as well as from tool sensor 104. Communication coil 116 may also be used to
transmit control signals, such as a clock signal, to the implanted sensors and tool
sensor. Communication coil 116 is coupled by wires (not shown) to computer 36. The
computer processes the signals received from communication coil 116 in order to determine
the locations and orientations of the sensors. Coils 114 and 116 may be printed on
the surface of pad 110, as shown in Fig. 6A, or they may alternatively comprise printed
circuit traces or wire-wound coils contained inside pad 110.
[0033] Fig. 6B schematically shows a working volume 118 created by field generator coils
32 when driven by driver circuits 34. The surface of the working volume represents
the outer limit of the region in which tracking system 20 is able to determine sensor
coordinates to within a certain accuracy i.e. the location coordinates or position
and orientation coordinates of the sensor. The required accuracy is determined by
functional considerations, such as the degree of positioning precision required by
surgeon 22 in performing the surgical procedure at hand. Typically, the outer surface
of working volume 118 represents the limit in space at which tracking accuracy drops
to the range of 1-2 mm. Tilting the field generator coils, as shown in Figs. 6A and
6B, typically lowers the centroid of the working volume. Because pad 110 is rigid,
it cannot be raised and lowered or tilted, as can structure 40 in Fig. 1. Pad 110
may, however, be slid in and out of table 112 in order to shift the position of working
volume 118 along the table, so that the working volume intercepts the bone 50 or portion
of the bone 50 on which the surgeon in to operate.
[0034] Fig. 7 is a schematic, pictorial illustration showing how reference structure 40
may be adjusted for use in surgery on a knee 120 of patient 26. The patient lies on
an operating table 122, which folds as shown in the picture to give the surgeon convenient
access to the patient's knee joint. Base 44 of structure 40 tilts accordingly, so
that the working volume of field generator coils 32 encompasses the area of knee 120,
while still permitting the surgeon unimpeded access to the area.
[0035] Fig. 8 is a schematic, pictorial illustration showing a reference structure 130 for
supporting field generator coils 32. Structure 130 comprises arms 132, which hold
coils 32. The arms are fixed to an articulated boom 134, which permits the height
and angle of the field generator coils 32 to be adjusted relative to the position
of the patient on an operating table 136. Boom 134 may be carried by a wheeled cart
138, so that structure 130 can be positioned at either side of table 136 or at the
foot or head of the table. Cart 138 may also contain computer 36 and/or driver circuits
34. To reduce clutter over operating table 136, structure 130 may be integrated with
an overhead lamp 140, as shown in the figure. In this configuration, lamp 140 illuminates
the area of the working volume of coils 32. An additional lamp 142 is shown for completeness.
[0036] Fig. 9 is a schematic, pictorial illustration showing a reference structure 150 supporting
field generator coils 32. Structure 150 comprises an articulated boom 154, which holds
arms 152 to which coils 32 are attached. In this embodiment, structure 150 is tilted
and positioned over the area of the patient's knees, to provide functionality similar
to that shown in Fig. 7.
[0037] Figs. 10A and 10B are schematic, pictorial illustrations showing another reference
structure 160.
[0038] Structure 160 comprises a semicircular holder 162 for field generator coils 32, which
is mounted on a base 164. Whereas the reference structures shown above are configured
to position coils 32 in a plane that is roughly parallel to the long axis of the bone
to be operated upon (such as the femur or the fibula), the plane of structure 160
is roughly perpendicular to this axis. Typically, for proper positioning of the working
volume, structure 160 is placed so that the bone axis passes through the circle defined
by the positions of coils 32, i.e., so that holder 162 partly surrounds the bone axis.
Structure 160 may be mounted on a cart 166 with wheels, enabling it to be positioned
either at the foot (Fig. 10A) or head (Fig. 10B) of table 122. An adjustment slot
167 or other mechanism in base 164 permits holder 162 to rotate about the patient.
A hinge permits base 164 to tilt, while telescopic legs 170 permit the entire structure
to be raised or lowered. Structure 160 may thus be positioned flexibly, at the convenience
of the surgeon, depending on the type of procedure that is to be carried out. The
configuration of Fig. 10A, for example, may be convenient for hip surgery, while that
of Fig. 10B is convenient for knee surgery.
[0039] Fig. 11 is a schematic, pictorial illustration showing a magnetic tracking system
180 for use in surgery, in accordance with the present invention. In this embodiment,
the tracking system is integrated into an operating table 182. The operating table
may be custom-made for this purpose, and may thus comprise little or no magnetic material.
A reference structure 184 is fixed to the underside of table 182 by an articulated
mount that permits structure 184 to be rotated, tilted, raised and lowered, so as
to position field generator coils 32 as required for the surgical procedure in question.
A telescopic base 186 of table 182 contains driver circuits 34 and computer 36. Positions
and orientations of position sensors and tools are shown on display 46, which is likewise
integrated with table 182. System 180 thus permits the surgeon to operate with only
minimal added encumbrance due to the use of magnetic position tracking.
1. A surgical tracking system (180), comprising:
a wireless position sensor (70), which is adapted to be implanted in a bone (50) of
a subject, and responsively to externally-applied magnetic fields within a working
volume of the surgical tracking system, to generate and transmit sensor signals indicative
of coordinates of the wireless position sensor within the bone;
a plurality of field generator coils (32), which are adapted to generate the magnetic
fields so as to define the working volume;
a reference structure (184), to which the field generator coils are fixed in predetermined
locations, and which is movable relative to the subject in order to position the working
volume so as to intercept the bone;
a system controller (36), which is coupled to receive and process the sensor signals
so as to determine the coordinates of the wireless position sensor within the bone;
and
an operating table (182) having an underside and comprising a base (186), which contains
the system controller, wherein the reference structure comprises multiple arms, each
holding a respective one of the field generator coils (32), and an articulated mount
to which the arms are fixed and which is fixed to the underside of the operating table
in order to support the arms.
2. The system (180) according to claim 1, wherein the articulated mount is adapted to
adjust at least one of a height, a rotation and a tilt of the arms, while maintaining
the arms in a fixed mutual relation.
3. The system (180) according to claim 1, wherein the operating table (182) comprises
no magnetic material.
4. The system (180) according to claim 1, wherein the base (186) is a telescopic base.
5. The system (180) according to claim 1, wherein the plurality of field generator coils
(32), the reference structure (184) and the system controller are integrated into
the operating table.
6. The system (180) according to claim 1, wherein the bone has an axis, and wherein the
locations at which the field generator coils (32) are fixed to the reference structure
(184) define a plane, and wherein the reference structure is adapted to position the
field generator coils so that the plane is approximately parallel to the axis.
7. The system (180) according to claim 1, wherein the bone has an axis, and wherein the
locations at which the field generator coils (32) are fixed to the reference structure
(184) define a plane, and wherein the reference structure is adapted to position the
field generator coils so that the plane is approximately perpendicular to the axis.
8. The system (180) according to claim 1, wherein the position sensor (70) comprises
one or more sensor coils (72), which are adapted to sense the magnetic fields so as
to generate the sensor signals.
9. The system (180) according to claim 8, and comprising a driving antenna, which is
adapted to radiate a radio frequency (RF) electromagnetic field toward the sensor,
and wherein the position sensor comprises a power coil (74), which is coupled to receive
the RF electromagnetic field so as to provide electrical power to the sensor.
10. The system (180) according to claim 8, wherein the position sensor (70) comprises
a communication coil (76), which is coupled to transmit the sensor signals to the
system controller.
11. The system (180) according to claim 8, and comprising a screw (30), which contains
at least the one or more sensor coils of the position sensor, and which is adapted
to be inserted into the bone.
12. The system (180) according to claim 11, wherein the position sensor comprises a power
source (90), which is contained in the screw.
13. The system (180) according to claim 11, wherein the position sensor (70) comprises
an external unit (60), which comprises at least a power source and is adapted to be
positioned outside a body of the subject, and wires (58) coupling the one or more
sensor coils in the screw to the external unit.
14. The system (180) according to claim 1, and comprising a surgical tool (28), for operating
on the bone, the surgical tool comprising a tool position sensor (104), which is adapted
to generate and transmit, responsively to the externally-applied magnetic fields,
tool signals indicative of coordinates of the surgical tool relative to the bone.
1. Chirurgisches Verfolgungssystem (180), umfassend:
einen drahtlosen Positionssensor (70), der zum Implantieren in einen Knochen (50)
eines Lebewesens angepasst ist und auf extern angelegte Magnetfelder innerhalb eines
Arbeitsvolumens des chirurgischen Verfolgungssystems anspricht, zum Erzeugen und Senden
von Sensorsignalen, die Koordinaten des drahtlosen Positionssensors innerhalb des
Knochens angeben;
eine Mehrzahl von Felderzeugungsspulen (32), die zum Erzeugen der Magnetfelder angepasst
sind, so dass das Arbeitsvolumen festgelegt wird;
eine Referenzstruktur (184), an der die Felderzeugungsspulen an vorgegebenen Positionen
fixiert sind und die in Bezug auf das Lebewesen zum Positionieren des Arbeitsvolumens,
so dass es den Knochen schneidet, bewegbar ist;
eine Systemsteuereinrichtung (36), die zum Empfangen und Verarbeiten der Sensorsignale
gekoppelt ist, so dass die Koordinaten des drahtlosen Positionssensors innerhalb des
Knochens bestimmt werden; und
einen Operationstisch (182), der eine Unterseite aufweist und eine Basis (186) umfasst,
welche die Systemsteuereinrichtung enthält, wobei die Referenzstruktur eine Mehrzahl
von Armen, die jeweils eine der Felderzeugungsspulen (32) halten, und einen Gelenkhalter
umfasst, an dem die Arme fixiert sind und der an der Unterseite des Operationstischs
zum Stützen der Arme fixiert ist.
2. System (180) nach Anspruch 1, bei dem der Gelenkhalter zum Einstellen von mindestens
einem von einer Höhe, einer Drehung und einer Neigung der Arme angepasst ist, während
die Arme in einer feststehenden gegenseitigen Beziehung gehalten werden.
3. System (180) nach Anspruch 1, bei dem der Operationstisch (182) kein magnetisches
Material umfasst.
4. System (180) nach Anspruch 1, bei dem die Basis (186) eine teleskopische Basis ist.
5. System (180) nach Anspruch 1, bei dem die Mehrzahl von Felderzeugungsspulen (32),
die Referenzstruktur (184) und die Systemsteuereinrichtung in dem Operationstisch
integriert sind.
6. System (180) nach Anspruch 1, bei dem der Knochen eine Achse aufweist und bei dem
die Positionen, an denen die Felderzeugungsspulen (32) an der Referenzstruktur (184)
fixiert sind, eine Ebene festlegen, und bei dem die Referenzstruktur zum Positionieren
der Felderzeugungsspulen derart, dass die Ebene etwa parallel zu der Achse ist, angepasst
ist.
7. System (180) nach Anspruch 1, bei dem der Knochen eine Achse aufweist und bei dem
die Positionen, an denen die Felderzeugungsspulen (32) an der Referenzstruktur (184)
fixiert sind, eine Ebene festlegen, und bei dem die Referenzstruktur zum Positionieren
der Felderzeugungsspulen derart, dass die Ebene etwa senkrecht zu der Achse ist, angepasst
ist.
8. System (180) nach Anspruch 1, bei dem der Positionssensor (70) eine oder mehrere Sensorspule(n)
(72) umfasst, die zum Erfassen der Magnetfelder angepasst ist oder sind, so dass die
Sensorsignale erzeugt werden.
9. System (180) nach Anspruch 8, das eine Ansteuerantenne ("driving antenna") umfasst,
die zum Abstrahlen eines elektromagnetischen Hochfrequenz (HF)-Felds in die Richtung
des Sensors angepasst ist, und bei dem der Positionssensor eine Leistungsspule (74)
umfasst, die zum Empfangen des elektromagnetischen HF-Felds gekoppelt ist, so dass
eine elektrische Leistung für den Sensor bereitgestellt wird.
10. System (180) nach Anspruch 8, bei dem der Positionssensor (70) eine Kommunikationsspule
(76) umfasst, die zum Senden der Sensorsignale zu der Systemsteuereinrichtung gekoppelt
ist.
11. System (180) nach Anspruch 8, das eine Schraube (30) umfasst, die mindestens die eine
oder die mehreren Sensorspule(n) des Positionssensors enthält und die zum Einsetzen
in den Knochen angepasst ist.
12. System (180) nach Anspruch 11, bei dem der Positionssensor eine Stromquelle (90) umfasst,
die in der Schraube enthalten ist.
13. System (180) nach Anspruch 11, bei dem der Positionssensor (70) eine externe Einheit
(60), die mindestens eine Stromquelle umfasst und zum Positionieren außerhalb eines
Körpers des Lebewesens angepasst ist, und Drähte (58) umfasst, welche die eine oder
die mehreren Sensorspule(n) in der Schraube mit der externen Einheit koppeln.
14. System (180) nach Anspruch 1, das ein chirurgisches Werkzeug (28) zum Bearbeiten des
Knochens umfasst, wobei das chirurgische Werkzeug einen Werkzeugpositionssensor (104)
umfasst, der zum Erzeugen und Übertragen, als Reaktion auf die extern angelegten Magnetfelder,
von Werkzeugsignalen angepasst ist, die Koordinaten des chirurgischen Werkzeugs in
Bezug auf den Knochen angeben.
1. Système de suivi chirurgical (180), comprenant :
un capteur de position sans fil (70), qui est conçu pour être implanté dans un os
(50) d'un sujet, et réagissant à des champs magnétiques appliqués de l'extérieur au
sein d'un volume de travail du système de suivi chirurgical, pour produire et transmettre
des signaux de capteur indiquant les coordonnées du capteur de position sans fil à
l'intérieur de l'os ;
une pluralité de bobines génératrices de champs (32), qui sont adaptées pour produire
les champs magnétiques de manière à délimiter le volume de travail ;
une structure de référence (184), à laquelle sont fixées les bobines génératrices
de champs à des emplacements prédéterminés, et que l'on peut déplacer par rapport
au sujet afin de positionner le volume de travail de manière à intercepter l'os ;
un dispositif de commande (36) du système, qui est couplé pour recevoir et traiter
les signaux de capteur de manière à déterminer les coordonnées du capteur de position
sans fil à l'intérieur de l'os ; et
une table d'opération (182) ayant une face inférieure et comprenant une base (186),
qui contient le dispositif de commande du système, dans lequel la structure de référence
comprend de multiples bras, chacun maintenant une bobine respective des bobines génératrices
de champs (32), et un support articulé auquel sont fixés les bras et qui est fixé
à la face inférieure de la table d'opération afin de supporter les bras.
2. Système (180) selon la revendication 1, dans lequel le support articulé est conçu
pour régler au moins l'une d'une hauteur, d'une rotation et d'une inclinaison des
bras, tout en maintenant les bras dans une relation mutuelle fixe.
3. Système (180) selon la revendication 1, dans lequel la table d'opération (182) ne
comprend aucun matériau magnétique.
4. Système (180) selon la revendication 1, dans lequel la base (186) est une base télescopique.
5. Système (180) selon la revendication 1, dans lequel la pluralité de bobines génératrices
de champs (32), la structure de référence (184) et le dispositif de commande du système
sont intégrés dans la table d'opération.
6. Système (180) selon la revendication 1, dans lequel l'os présente un axe, et dans
lequel les emplacements auxquels les bobines génératrices de champs (32) sont fixées
à la structure de référence (184) délimitent un plan, et dans lequel la structure
de référence est adaptée pour positionner les bobines génératrices de champ de telle
manière que le plan soit approximativement parallèle à l'axe.
7. Système (180) selon la revendication 1, dans lequel l'os présente un axe, et dans
lequel les emplacements auxquels les bobines génératrices de champs (32) sont fixées
à la structure de référence (184) délimitent un plan, et dans lequel la structure
de référence est conçue pour positionner les bobines génératrices de champs de telle
manière que le plan soit approximativement perpendiculaire à l'axe.
8. Système (180) selon la revendication 1, dans lequel le capteur de position (70) comprend
une ou plusieurs bobines de capteur (72), qui sont conçues pour détecter les champs
magnétiques de manière à produire les signaux de capteur.
9. Système (180) selon la revendication 8, comprenant une antenne d'excitation, qui est
conçue pour rayonner un champ électromagnétique radiofréquence (RF) vers le capteur,
et dans lequel le capteur de position comprend une bobine d'alimentation (74), qui
est couplée pour recevoir le champ électromagnétique RF de manière à fournir une alimentation
électrique au capteur.
10. Système (180) selon la revendication 8, dans lequel le capteur de position (70) comprend
une bobine de communication (76) qui est couplée pour transmettre les signaux de capteur
au dispositif de commande du système.
11. Système (180) selon la revendication 8, comprenant une vis (30), qui contient au moins
la ou les bobines de capteur du capteur de position, et qui est conçue pour être insérée
dans l'os.
12. Système (180) selon la revendication 11, dans lequel le capteur de position comprend
une source d'alimentation (90) qui est contenue dans la vis.
13. Système (180) selon la revendication 11, dans lequel le capteur de position (70) comprend
une unité externe (60), qui comprend au moins une source d'alimentation et est conçue
pour être positionnée à l'extérieur d'un corps du sujet, et des fils (58) couplant
la ou les bobines de capteur dans la vis à l'unité externe.
14. Système (180) selon la revendication 1, comprenant un outil chirurgical (28) pour
opérer l'os, l'outil chirurgical comprenant un capteur de position d'outil (104),
qui est conçu pour produire et transmettre, en réponse aux champs magnétiques appliqués
de l'extérieur, des signaux d'outil indiquant les coordonnées de l'outil chirurgical
par rapport à l'os.